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Ultrafast carrier relaxation and diffusion dynamics in ZnO

机译:ZnO中超快的载流子弛豫和扩散动力学

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We report on measurements and calculations of the ultrafast exciton relaxation dynamics in ZnO. Time-resolved differential reflectivity measurements of bulk ZnO were performed as a function of excitation wavelength. Bi-exponential decays of the A and B exciton states are observed with a fast (~2-5 ps scale) and a slower (~50-100 ps scale) component, which depend strongly on excitation wavelength. Theoretical calculations based on a multi-state, coupled rate equation model were directly compared with the experiments to account for the rapid scattering between the A and B valence bands. Results show that the inter-valence band scattering is most likely not responsible for the fast initial relaxation. Instead our results show that carrier diffusion can play an important role in explaining the initial fast relaxation.
机译:我们报告了在ZnO中超快激子弛豫动力学的测量和计算。 ZnO的时间分辨差分反射率测量值是激发波长的函数。观察到A和B激子态的双指数衰减具有快(〜2-5 ps标度)和较慢(〜50-100 ps标度)的分量,这在很大程度上取决于激发波长。直接基于多状态耦合速率方程模型的理论计算与实验进行了比较,以说明A和B价带之间的快速散射。结果表明,价带间散射很可能与快速初始弛豫无关。相反,我们的结果表明,载流子扩散可以在解释初始快速弛豫中起重要作用。

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